CN210953811U - Reusable high-flux terahertz metamaterial rapid detection device - Google Patents

Reusable high-flux terahertz metamaterial rapid detection device Download PDF

Info

Publication number
CN210953811U
CN210953811U CN201921583911.6U CN201921583911U CN210953811U CN 210953811 U CN210953811 U CN 210953811U CN 201921583911 U CN201921583911 U CN 201921583911U CN 210953811 U CN210953811 U CN 210953811U
Authority
CN
China
Prior art keywords
metamaterial
chip
carrier
positioning
detection
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201921583911.6U
Other languages
Chinese (zh)
Inventor
杨柯
杨翔
府伟灵
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nanfang Hospital
First Affiliated Hospital of PLA Military Medical University
Original Assignee
First Affiliated Hospital of PLA Military Medical University
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by First Affiliated Hospital of PLA Military Medical University filed Critical First Affiliated Hospital of PLA Military Medical University
Priority to CN201921583911.6U priority Critical patent/CN210953811U/en
Application granted granted Critical
Publication of CN210953811U publication Critical patent/CN210953811U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Investigating Or Analysing Materials By Optical Means (AREA)

Abstract

The utility model discloses a reusable high-flux terahertz metamaterial rapid detection device, which comprises a base, a metamaterial chip and a carrier; a positioning groove is arranged on the base; the metamaterial chip is arranged in the positioning groove; a plurality of detection areas for placing an object to be detected are arranged on the metamaterial chip; the base is provided with a light hole, a magnetic material layer is arranged between the positioning groove and the metamaterial chip so as to be suitable for positioning the metamaterial chip in the positioning groove through magnetic attraction, and the carrier is arranged on the base; the metamaterial chip is arranged on the carrier. The device provided by the utility model have the characteristics of the quick and the detection process batchization of detection process: this device adopts the mode that filters membrane and determinand magnetic attraction combine together, compares with traditional stoving process, very big shortening the sample preparation time. The high-precision array type mobile carrier is adopted, and the rapid switching and batch detection of a plurality of samples are realized, so that a high-flux detection mode of the terahertz metamaterial is realized.

Description

Reusable high-flux terahertz metamaterial rapid detection device
Technical Field
The utility model relates to a sensor technical field, especially a quick detection device of super material is now to repeatedly usable's high flux type terahertz.
Background
Terahertz (THz) metamaterial refers to a novel artificial material which interacts with the Terahertz metamaterial to form THz waveband electromagnetic waves, and can flexibly control physical parameters such as amplitude, phase and the like of the THz waves. The strong local field distribution and the high Q value resonance of the metamaterial make the metamaterial very sensitive to substances attached to the surface of the metamaterial, and after the surface of the metamaterial is covered with the substances or the substances are changed, the change of the local effective dielectric constant of the metamaterial can cause the change of capacitance, so that the resonant frequency of the metamaterial is changed. Therefore, the detection of the trace sample can be realized by detecting the displacement of the resonance frequency of the metamaterial.
As a novel sensing mode, the THz metamaterial technology is widely applied to a plurality of fields such as semiconductor materials, electronic devices, chemical substances, biomedical treatment and the like at present, but when the THz metamaterial is used for detecting samples, particularly liquid samples, the THz metamaterial technology also has the following steps in the processes of detection, detection and detection: long preparation time, low detection flux and poor reusability.
1. The preparation time is long: at present, the types of samples which can be detected by the metamaterial are various, but when the detection of the liquid sample is related, the method basically comprises the steps of firstly dripping the liquid sample on the surface of the metamaterial, and after the liquid sample is dried, closely combining a substance to be detected with the surface structure of the metamaterial and then measuring. The main reason is that the metamaterial only generates signal response to substances near the structure of the metamaterial, and the object to be measured in the liquid sample is in a suspension state, so that a larger distance still exists between the object to be measured and the metamaterial structure after the object to be measured is dripped on the surface of the metamaterial. Therefore, the traditional method adopts a drying mode to remove the solvent water, so that the substance to be detected is deposited on the surface structure of the metamaterial. But in order not to damage the structure, the drying temperature is generally less than 70 ℃, so the whole preparation link is generally as long as 20-30 minutes, and the detection time is greatly consumed.
2. The detection flux is low: in order to ensure that the metamaterial position and the THz wave spot position are fixed in the detection process, only one chip is mostly placed on the conventional metamaterial detection device, and only one sample can be detected at one time after long-time preparation in the early stage. The low-flux detection mode greatly improves the detection time and the value cost and reduces the detection efficiency.
3. Poor reusability: after detection is finished, substances deposited on the surface of the metamaterial structure can be tightly combined with the surface of the metamaterial due to loss of moisture and electrostatic adsorption, and the traditional water washing method cannot achieve the effect of removing residual substances, so that the reusability of the metamaterial is poor.
SUMMERY OF THE UTILITY MODEL
In view of this, the utility model aims at providing a quick detection device of high flux type terahertz metamaterial of repeatedly usable.
In order to achieve the above purpose, the utility model provides a following technical scheme:
the reusable high-flux terahertz metamaterial rapid detection device provided by the technical scheme comprises a base and a metamaterial chip;
the base is provided with a positioning groove; the metamaterial chip is movably arranged in the positioning groove;
the metamaterial chip is provided with a plurality of detection areas for placing objects to be detected;
the base is provided with a light hole, and the light hole is matched with a detection area on the metamaterial chip so as to be suitable for interaction between the terahertz waves and an object to be detected on the detection area of the metamaterial chip.
Further, be provided with the magnetic material layer between constant head tank and the metamaterial chip to be suitable for the metamaterial chip and be in the location of chip is realized through magnetic attraction in the constant head tank, the magnetic material layer is including setting up the first magnetic material layer in the constant head tank respectively and setting up the second magnetic material layer on the metamaterial chip, can produce magnetic force between first magnetic material layer and the second magnetic material layer.
Further, the device also comprises a carrier, wherein the carrier is movably arranged on the base; the metamaterial chip is arranged on the carrier.
Further, a positioning shaft is arranged below the carrier and matched with a groove formed in the base, and the positioning shaft and the groove are movably connected so as to be suitable for interaction between the terahertz waves and the object to be detected on the metamaterial chip detection area.
Furthermore, a magnetic material layer capable of generating magnetic force is arranged between the positioning shaft and the groove, so that the positioning shaft is suitable for being attracted and positioned in a magnetic force attraction mode when moving in the positioning groove, and the detection area of the metamaterial chip is always coincided with the position of a light spot of the terahertz wave;
the positioning groove arranged on the base is a V-shaped groove and used for determining the position of the chip, and the V-shaped groove comprises an X-direction groove and a Y-direction groove; the X-direction groove is provided with three parallel X-direction grooves, and the Y-direction positioning groove is provided with three parallel Y-direction grooves.
Further, the carrier is a mobile carrier, and the mobile carrier comprises a main body, a to-be-detected part and a detection part; wait to examine the portion of examining and set up around the main part, the detection part sets up in the main part middle part, it is used for the gliding passageway of metamaterial chip to wait to be provided with between portion of examining and the detection part, the detection part just to the light trap top to wait to detect the thing interact on the detection part that is suitable for terahertz wave and metamaterial chip.
Further, the main part is the circular slab, wait to examine a portion and set up along the circumference, the detection portion sets up in the centre of a circle, the passageway is for setting up the recess between waiting to examine a portion and the detection portion, the metamaterial chip is so that the metamaterial chip can remove on the recess with the recess cooperation.
Further, the carrier is a circular carrier, and an array metamaterial chip is arranged on the circular carrier;
a positioning device is arranged between the circular carrier and the positioning groove, and the positioning device gradually changes the position of the circular carrier under the action of external force, so that each detection area in the array type metamaterial chip is positioned at the light-transmitting hole, and the array type metamaterial chip is suitable for the interaction between terahertz waves and an object to be detected on the detection area corresponding to the metamaterial chip;
or
The carrier is a rectangular carrier, and an array metamaterial chip is arranged on the rectangular carrier;
a positioning device is arranged between the rectangular carrier and the positioning groove, and the positioning device gradually changes the position of the rectangular carrier under the action of external force, so that each detection area in the array chip is positioned at the light-transmitting hole, and the terahertz waves and the objects to be detected on the detection areas corresponding to the metamaterial chips are suitable for interaction;
the positioning device comprises a positioning hole and a positioning bulge;
the positioning hole is arranged in the positioning groove, the positioning bulge is arranged on the carrier, and the positioning hole and the positioning bulge are matched to fix the position of the carrier.
The device further comprises a filtering membrane arranged above the object to be detected on the chip, wherein the filtering membrane is used for filtering solvent water in the object to be detected so as to be suitable for the object to be detected to be deposited on the surface of the chip;
the filtering membrane is provided with filtering holes with the diameter of 0.22-0.4 mu m and is made of PVC material;
the filter membrane is used for filtering the substance to be measured with the diameter more than 0.5 mu m.
Furthermore, the magnetic beads are arranged in the object to be detected on the metamaterial chip and used for capturing the object to be detected with the diameter smaller than 0.5 mu m to the surfaces of the magnetic beads, and the object to be detected and the solvent water are separated under the action of the magnetic force of the magnetic material layer arranged below the metamaterial chip, so that the object to be detected is deposited on the surfaces of the metamaterial chip.
The device provided by the utility model has following beneficial effect, specifically as follows:
(1) the device has the characteristics of rapidization of the detection process: the device adopts a mode of combining the filtration membrane and the magnetic attraction of the object to be tested to remove the solvent water in the liquid sample, the object to be tested is deposited on the surface of the metamaterial structure, the traditional long-time drying method is abandoned, and compared with the traditional drying process, the sample preparation time is greatly shortened. Meanwhile, the metamaterial chip is distributed in various arrays, and the pretreatment operations before simultaneous acquisition and detection of a plurality of detection samples, such as simultaneous drying of a plurality of samples and the like, can be realized respectively through the rapid matching of the carrier and the base; meanwhile, the magnetic material layer between the carrier positioning shaft and the base groove is matched and connected, the position of the metamaterial chip is accurately positioned under the action of magnetic attraction, the time for replacing a sample in the detection process is greatly saved, and the rapid detection process of the terahertz metamaterial is realized.
(2) The device has the characteristics of mass detection process: the high-precision array type mobile carrier is adopted, the array type metamaterial chip is arranged on the carrier, and the rotation and the sliding are realized under the action of the magnetic material layer by combining the positioning shaft and the groove, so that the rapid switching and the batch detection of a plurality of samples can be realized, and the high-flux detection mode of the terahertz metamaterial can be realized.
(3) The detection chip of the device has the characteristics of repeatability: after the metamaterial chip in the device is used, a biological enzyme-SDS-isopropanol triple cleaning method is adopted, so that the electrostatic attraction around the magnetic beads and the sample to be detected can be effectively removed, the bonding force between the magnetic beads and the metamaterial chip is reduced, and the residual substance to be detected is cleaned by deionized water washing and isopropanol washing.
Additional advantages, objects, and features of the invention will be set forth in part in the description which follows and in part will become apparent to those having ordinary skill in the art upon examination of the following or may be learned from practice of the invention. The objectives and other advantages of the invention may be realized and attained by the means of the instrumentalities and/or combinations particularly pointed out in the appended claims.
Drawings
In order to make the purpose, technical scheme and beneficial effect of the utility model clearer, the utility model provides a following figure explains:
FIG. 1 is a schematic view of the overall structure of a detecting device with a magnetic layer disposed in a positioning groove.
Fig. 2 is a schematic view of a matching structure of the carrier and the base.
Fig. 3 is a schematic structural view of the mobile carrier.
FIG. 4 is a schematic structural diagram of a four-chip detection device.
FIG. 5 is a schematic structural diagram of a detecting device with nine chip arrays.
Fig. 6 is a schematic view of a protrusion and a groove structure between the base and the carrier.
FIG. 7 is a schematic diagram showing the positions of the formants after the metamaterial chip is cleaned by the triple method and the common method.
In the figure, 1 is a base, 11 is a positioning groove, 12 is a light hole, 21 is a carrier, and 22 is a chip; 23 is a projection, 3 is a detection area, 4 is a magnetic material layer, and 5 is a filter membrane;
24 is a groove; 241 is an X-direction groove, 242 is a Y-direction groove; 25 is a positioning shaft; 26 is a positioning device; 27 is a pushing boss; 211 is a positioning hole, 212 is a positioning projection.
Reference numeral 31 denotes a main body, 32 denotes a to-be-detected portion, and 33 denotes a detection portion; 34 are channels.
Detailed Description
The present invention will be further described with reference to the accompanying drawings and specific embodiments so that those skilled in the art can better understand the present invention and can implement the present invention, but the embodiments are not to be construed as limiting the present invention.
Example 1
As shown in fig. 1, the reusable high-flux terahertz metamaterial rapid detection device provided by this embodiment includes a base and a chip;
the base is provided with a positioning groove; the chip is movably arranged in the positioning groove;
the chip is provided with a plurality of detection areas for placing objects to be detected;
the base is provided with a light hole, and the light hole is matched with the detection area on the chip so as to be suitable for the terahertz waves passing through the light hole to act on the object to be detected in the corresponding detection area.
A magnetic material layer capable of generating attraction is arranged between the positioning groove and the chip, so that the chip is positioned in the positioning groove through magnetic attraction.
In the detection apparatus provided by this embodiment, a filter membrane is further disposed above the substance to be detected on the chip, and the filter membrane is used for filtering the solvent water in the substance to be detected, so as to be suitable for the substance to be detected to deposit on the surface of the chip.
As shown in fig. 2, the detecting device provided in this embodiment further includes a carrier, and the carrier is movably disposed on the base; the chip is arranged on the carrier.
The terahertz wave detection device is characterized in that a positioning shaft is arranged below the carrier, the positioning shaft is matched with a groove arranged on the base, and the positioning shaft and the groove are movably connected so as to be suitable for determining that terahertz waves passing through the light hole act on an object to be detected in a corresponding detection area on the chip.
A magnetic material layer capable of generating attraction is arranged between the positioning shaft and the groove, so that the positioning shaft is suitable for being attracted and positioned through magnetic force when moving in the positioning groove, and the detection area of the chip is always coincided with the position of a light spot of the terahertz wave.
The base of the detection device provided by this embodiment is further provided with a positioning groove, the positioning groove is a V-shaped groove and is used for determining the position of the chip, and the V-shaped groove comprises an X-direction groove and a Y-direction groove; the X-direction groove is provided with three parallel X-direction grooves, and the Y-direction positioning groove is provided with three parallel Y-direction grooves.
As shown in fig. 3, the carrier in the detection apparatus provided in this embodiment is a mobile carrier, and the mobile carrier includes a main body, a to-be-detected portion, and a detection portion; wait to examine a portion and set up around the main part, the detection part sets up in the main part middle part, it is used for the gliding passageway of chip to wait to be provided with between portion and the detection part, the detection part just to the light trap top to be suitable for the terahertz wave through the light trap to act on the detection part.
The main part is circular platelike, wait to examine the portion and set up along the circumference, the detection part sets up in the centre of a circle, the passageway is for setting up the recess between waiting to examine portion and the detection part, the recess.
The carrier provided by the embodiment is a circular carrier, and an array chip is arranged on the circular carrier;
a positioning device is arranged between the circular carrier and the positioning groove, and the positioning device gradually changes the position of the circular carrier under the action of external force, so that each chip in the array chips is positioned at the light-transmitting hole, and the terahertz waves passing through the light-transmitting holes act on the corresponding chip;
as shown in fig. 4, 5 and 6, the carrier provided in the present embodiment is a rectangular carrier, and the rectangular carrier is provided with an array chip; a positioning device is arranged between the rectangular carrier and the positioning groove, and the positioning device gradually changes the position of the rectangular carrier under the action of external force, so that each chip in the array chips is positioned at the light-transmitting hole, and the terahertz waves passing through the light-transmitting holes act on the corresponding chip; the positioning device comprises a positioning hole and a positioning bulge; the positioning hole is arranged in the positioning groove, the positioning bulge is arranged on the carrier, and the positioning hole and the positioning bulge are matched to fix the position of the carrier.
Example 2
The carrier and the chip in the detection device provided by the embodiment are used as an object stage of an object to be detected, and the object stage is placed in the positioning groove; the object stage is arranged in the positioning groove in a non-fixed mode; when the position of the object stage needs to be adjusted, the object stage can be placed in the positioning groove again according to the required position direction, and therefore the object stage is movably connected with the base.
As shown in fig. 4, the four detection areas are arranged in the figure, each detection area is a chip provided with an object to be detected, the carrier is a rectangular carrier, and the rectangular carrier is provided with an array chip;
the positioning device is arranged between the rectangular carrier and the positioning groove and adopts a buckle type, the buckle type positioning device comprises a convex part arranged on the positioning groove and a concave part arranged on the carrier, a pushing boss is further arranged on the carrier, when the carrier needs to be rotated, external force is applied to the pushing boss, the position of the rectangular carrier is gradually changed under the action of the external force, the rectangular carrier is fixed through the positioning device, the convex part and the concave part are combined together in a buckle mode, the rectangular carrier is fixed at a new position, each chip in the array type chips is located at the light transmitting hole, and terahertz waves suitable for passing through the light transmitting holes act on the corresponding chip.
The carrier is a circular carrier, nine chips are arranged on the circular carrier and distributed in an array manner; a positioning device is arranged between the circular carrier and the positioning groove and comprises a positioning hole and a positioning bulge; the positioning hole is arranged in the positioning groove, the positioning bulge is arranged on the carrier, and the positioning hole and the positioning bulge are matched for fixing the position of the carrier; the carrier is further provided with a pushing boss, when the carrier needs to be rotated, external force is applied to the pushing boss, the position of the rectangular carrier is gradually changed under the action of the external force, and the rectangular carrier is fixed through the positioning device, so that each chip in the array chips is located at the light transmitting hole, and terahertz waves which pass through the light transmitting holes act on the corresponding chip.
The groove provided by the embodiment is a V-shaped groove and is used for determining the position of a chip, and the V-shaped groove comprises an X-direction groove and a Y-direction groove; when moving, the objective table needs to be lifted, and each test position is reached through the combination of the X-direction groove and the Y-direction groove; the X-direction groove of the present embodiment may be three X-direction grooves arranged in parallel to each other, and the Y-direction groove may be three Y-direction grooves arranged in parallel to each other. The protruding structure matched with the V-shaped groove and arranged on the carrier is shown in fig. 4 and 5, wherein the protruding portion is a triangular protrusion matched with the V-shaped grooves in different directions.
The chips are high-flux chips, and the chips are arranged according to a preset spacing distance. The high-flux chip comprises a plurality of metamaterial chips arranged according to an array structure; a single metamaterial chip is arranged between each metamaterial chip according to a preset spacing distance; each sample is kept at a distance to prevent contamination of the sample.
The stage of this embodiment can be fabricated as a 3 x 3, 6 x 6 or 9 x 9 array, or as an array required in other practical cases, and a metamaterial chip is placed on each array unit of the stage, for example, the stage of the 3 x 3 array is used in cooperation with a base, and 9 samples can be detected at a time by moving the stage to achieve the purpose of detecting 9 different regions. When the device is used for detection, 9 samples can be added once and dried together, and then THz detection can quickly obtain signals of the 9 samples only by moving the objective table, so that the time is saved. In the detection process, the problem that nucleic acid remains on the metamaterial after detection can be solved by adopting a biological + physical combined method: firstly, adding endonuclease for incubation at 37 ℃ for 5min to degrade nucleic acid fragments; then washing with deionized water for 2 min; and finally, washing with isopropanol for 2min, and drying with nitrogen. Because the endonuclease can degrade the nucleic acid in small segments, the nucleic acid is more easily dissolved in water; however, isopropanol is highly volatile and can take away residual substances in the process.
The device provided by the embodiment adopts: the three problems are respectively solved by combining magnetic attraction with a filtering membrane module, a high-precision array type mobile carrier module and a biological enzyme-Sodium Dodecyl Sulfate (SDS) -isopropanol triple cleaning method.
Magnetic attraction combined with a filtration membrane module: the traditional long-time drying method is abandoned, and the purposes of removing the solvent water in the liquid sample and depositing the substance to be detected on the surface of the metamaterial structure are achieved by adopting a magnetic attraction and filtration combined mode. The specific process is as follows: aiming at the situation that the diameter of a substance to be detected in a liquid sample is larger than 0.5 mu m (such as viruses, bacteria, cells and the like), a filtering membrane device (the material can be high-strength PVC and the like) with the same size as the chip and the pore diameter of 0.22 mu m is arranged above a metamaterial chip structure, the liquid sample is firstly dripped on the surface of the metamaterial, then the filtering membrane is used for extruding the liquid sample from top to bottom, and the substance to be detected with the diameter larger than the pore diameter of the filtering membrane can be extruded on the metamaterial structure, and solvent water molecules are filtered on the filtering membrane and can be easily wiped away. Most of substances to be detected can be deposited on the surface of the metamaterial structure after 3-5 times of filtration. And aiming at the condition that the diameter of the substance to be detected in the liquid sample is less than 0.5 mu m (such as chemical substances, proteins, nucleic acids, salt ions and the like), firstly adding magnetic beads with specific capture probes into the sample, capturing the substance to be detected on the surfaces of the magnetic beads, then arranging a magnet layer below the metamaterial structure, and separating the substance to be detected and solvent water by adopting a magnetic attraction mode so that the substance to be detected is deposited on the surface of the metamaterial. In the method, the filtering process of the filter membrane only needs 1 minute, and the process of magnetically separating the substance to be detected only needs 5 minutes, so that the sample preparation time is greatly shortened compared with the traditional drying process.
The filter membrane provided by the embodiment is used for filtering an analyte with the diameter larger than 0.5 mu m. In this embodiment, the analyte with a filtration diameter of 0.5 μm to 0.8 μm can be selected. The filtration pore diameter arranged on the filtration membrane is 0.22-0.4 μm. The particle size of the magnetic beads is 0.22-1.0 μm. The magnetic beads are used for capturing an object to be detected with the diameter smaller than 0.5 mu m to the surfaces of the magnetic beads, and the object to be detected and the solvent water are separated under the magnetic action of the magnetic material layer arranged below the metamaterial chip, so that the object to be detected is deposited on the surfaces of the metamaterial chip.
The embodiment adopts a high-precision array type mobile carrier module, wherein a metamaterial chip is designed into an array type of 3 × 3 or other specifications, corresponding chip carriers and corresponding bases are designed, a positioning shaft is arranged below the carriers, a positioning groove is arranged on the bases, the positioning shaft on the carriers is matched and connected with the groove, the positioning shaft and the groove are made of ferromagnetic materials, the chip position is accurately positioned in a magnetic attraction mode, the carriers can slide in the groove by using the positioning shaft, the accurate positioning is realized in a magnetic attraction mode, the detection area of the chip is always coincident with the light spot position of THz waves, the module can realize the fast switching and batch detection of a plurality of samples by arranging the array type chips and the positioning shaft in a sliding mode, and the flux of the metamaterial detection is greatly improved.
As shown in fig. 7, fig. 7 is a schematic diagram of the position of a resonance peak after a metamaterial chip is cleaned by a triple method and a common method, in the bio-enzyme-SDS-isopropanol triple cleaning method provided in this embodiment, after detection is completed, the metamaterial chip is first placed in a 0.01% SDS solution to be soaked for 5min, and SDS is an anionic surfactant, and can effectively remove electrostatic attraction around magnetic beads and a sample to be detected, and reduce the binding force between the magnetic beads and a metamaterial structure. Then wash chip surface 2min with the deionized water, wash 2min with isopropanol at last, nitrogen gas weathers can, because isopropanol has strong volatility, the process of weathering can take away remaining material to be measured in the lump, and concrete step is as follows:
1. placing the metamaterial chip in 0.01% SDS solution to soak for 5min, and removing the magnetic beads on the chip and the electrostatic attraction around the object to be detected;
2. washing the surface of the metamaterial chip for at least 2min by using deionized water at the flow rate of 200 ml/min;
3. and (3) flushing the surface of the metamaterial chip with isopropanol at the flow rate of 200ml/min for at least 2min, and drying with nitrogen.
4. The washing of special biological samples such as nucleic acid protein cells can increase the degradation process of biological enzyme solutions such as endonuclease, protease, pancreatin and the like, and the specific implementation mode is as follows: firstly, dropping a biological enzyme solution on the surface of a chip structure (wherein 5 muL of Benzonase nucleic acid high-activity totipotent Nuclease which is more than or equal to 250U/muL is adopted for a nucleic acid sample, 5 muL of anzyme proteolytic enzyme is adopted for a protein sample, and 0.5% of pancreatic enzyme of Gibco is adopted for a cell sample), incubating for 5-10min at 37 ℃, repeating for 3 times, and then cleaning according to the method.
As shown in fig. 7, the curves are sequentially arranged from top to bottom according to the curve intersecting the left ordinate axis, and the curves in the figure are respectively marked as a first curve, a second curve, a third curve and a fourth curve; wherein, the first curve is a blank metamaterial without being cleaned; the second curve represents the schematic position diagram of the formants after the triple washing, and the third curve represents the schematic position diagram of the formants after the common washing; the fourth curve shows a schematic diagram of the position of the resonance peak after sample application, the position of the resonance peak shifts to the left (as shown in the fourth curve in fig. 7) after 20 μ l of microRNA-21 solution with the concentration of 100 μ M is dropped on the blank metamaterial (as shown in the first curve in fig. 7), and the position of the resonance peak still does not return to the original blank metamaterial position by using a common cleaning method (absolute ethyl alcohol washing and deionized water washing). After the triple washing, the position of the resonance peak (such as the second curve in fig. 7, i.e. the curve indicated by the long dotted line in the figure) almost coincides with that of the blank metamaterial. The results show that the triple method can effectively remove the sample on the surface of the metamaterial chip, so that the position of the resonance peak of the metamaterial chip after being cleaned is consistent with the blank, and the purpose of repeated use is achieved.
Table 1 shows the position of a resonance peak when a micro RNA-21 sample is repeatedly detected after a metamaterial chip is cleaned by a triple method
Figure DEST_PATH_GDA0002484421590000091
From the data shown in table 1, it can be seen that: after 20 mul of microRNA-21 sample with the concentration of 100 mul is detected by using the metamaterial chip, the sample is washed by a triple method, and then the detection steps are repeated for 5 times. The relative offsets of the formants on the metamaterial of the samples measured in 5 times of repetition are respectively as follows: 0.0115THz, 0.0121THz, 0.0117THz, 0.0124THz and 0.0118THz, and the above results are statistically analyzed by variance analysis, the difference has no statistical significance (P >0.05), which indicates that the chip can be reused after the metamaterial chip is cleaned by the triple method.
The described embodiments are merely preferred embodiments for fully illustrating the present invention, and the scope of the present invention is not limited thereto. Equivalent substitutes or changes made by the technical personnel in the technical field on the basis of the utility model are all within the protection scope of the utility model. The protection scope of the present invention is subject to the claims.

Claims (10)

1. The utility model provides a quick detection device of repeatedly usable's high flux type terahertz metamaterial which characterized in that: comprises that
A base and a metamaterial chip;
the base is provided with a positioning groove; the metamaterial chip is movably arranged in the positioning groove;
the metamaterial chip is provided with a plurality of detection areas for placing objects to be detected;
the base is provided with a light hole, and the light hole is matched with a detection area on the metamaterial chip so as to be suitable for interaction between the terahertz waves and an object to be detected on the detection area of the metamaterial chip.
2. The apparatus of claim 1, wherein: the magnetic material layer is arranged between the positioning groove and the metamaterial chip, so that the metamaterial chip is positioned in the positioning groove through magnetic attraction, the magnetic material layer comprises a first magnetic material layer and a second magnetic material layer, the first magnetic material layer is arranged on the positioning groove, the second magnetic material layer is arranged on the metamaterial chip, and magnetic force can be generated between the first magnetic material layer and the second magnetic material layer.
3. The apparatus of claim 1, wherein: the carrying tool is movably arranged on the base; the metamaterial chip is arranged on the carrier.
4. The apparatus of claim 3, wherein: a positioning shaft is arranged below the carrier and matched with a groove formed in the base, and the positioning shaft and the groove are movably connected so as to be suitable for interaction between the terahertz waves and the object to be detected on the metamaterial chip detection area.
5. The apparatus of claim 4, wherein: a magnetic material layer capable of generating magnetic force is arranged between the positioning shaft and the groove so as to be suitable for the positioning shaft to move in the positioning groove in a magnetic attraction positioning mode, and therefore the detection area of the metamaterial chip is always overlapped with the position of a light spot of terahertz wave;
the positioning groove arranged on the base is a V-shaped groove and used for determining the position of the chip, and the V-shaped groove comprises an X-direction groove and a Y-direction groove; the X-direction groove is provided with three parallel X-direction grooves, and the Y-direction positioning groove is provided with three parallel Y-direction grooves.
6. The apparatus of claim 3, wherein: the carrier is a mobile carrier, and the mobile carrier comprises a main body, a to-be-detected part and a detection part; wait to examine the portion of examining and set up around the main part, the detection part sets up in the main part middle part, it is used for the gliding passageway of metamaterial chip to wait to be provided with between portion of examining and the detection part, the detection part just to the light trap top to wait to detect the thing interact on the detection part that is suitable for terahertz wave and metamaterial chip.
7. The apparatus of claim 6, wherein: the main part is the circular slab, wait to examine a portion and set up along the circumference, the detection portion sets up in the centre of a circle, the passageway is for setting up the recess between waiting to examine a portion and the detection portion, metamaterial chip and recess cooperation are so that the metamaterial chip can remove on the recess.
8. The apparatus of claim 3, wherein: the carrier is a circular carrier, and an array metamaterial chip is arranged on the circular carrier;
a positioning device is arranged between the circular carrier and the positioning groove, and the positioning device gradually changes the position of the circular carrier under the action of external force, so that each detection area in the array type metamaterial chip is positioned at the light-transmitting hole, and the array type metamaterial chip is suitable for the interaction between terahertz waves and an object to be detected on the detection area corresponding to the metamaterial chip;
or
The carrier is a rectangular carrier, and an array metamaterial chip is arranged on the rectangular carrier;
a positioning device is arranged between the rectangular carrier and the positioning groove, and the positioning device gradually changes the position of the rectangular carrier under the action of external force, so that each detection area in the array chip is positioned at the light-transmitting hole, and the terahertz waves and the objects to be detected on the detection areas corresponding to the metamaterial chips are suitable for interaction;
the positioning device comprises a positioning hole and a positioning bulge;
the positioning hole is arranged in the positioning groove, the positioning bulge is arranged on the carrier, and the positioning hole and the positioning bulge are matched to fix the position of the carrier.
9. The apparatus of claim 1, wherein: the device also comprises a filtering membrane arranged above the object to be detected on the chip, wherein the filtering membrane is used for filtering solvent water in the object to be detected so as to be suitable for the object to be detected to be deposited on the surface of the chip;
the filtering membrane is provided with filtering holes with the diameter of 0.22-0.4 mu m and is made of PVC material;
the filter membrane is used for filtering the substance to be measured with the diameter more than 0.5 mu m.
10. The apparatus of claim 2, wherein: the magnetic beads are arranged in the object to be detected on the metamaterial chip and used for capturing the object to be detected with the diameter smaller than 0.5 mu m to the surfaces of the magnetic beads, and the object to be detected and the solvent water are separated under the action of the magnetic force of the magnetic material layer arranged below the metamaterial chip, so that the object to be detected is deposited on the surfaces of the metamaterial chip.
CN201921583911.6U 2019-09-23 2019-09-23 Reusable high-flux terahertz metamaterial rapid detection device Active CN210953811U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201921583911.6U CN210953811U (en) 2019-09-23 2019-09-23 Reusable high-flux terahertz metamaterial rapid detection device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201921583911.6U CN210953811U (en) 2019-09-23 2019-09-23 Reusable high-flux terahertz metamaterial rapid detection device

Publications (1)

Publication Number Publication Date
CN210953811U true CN210953811U (en) 2020-07-07

Family

ID=71396763

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201921583911.6U Active CN210953811U (en) 2019-09-23 2019-09-23 Reusable high-flux terahertz metamaterial rapid detection device

Country Status (1)

Country Link
CN (1) CN210953811U (en)

Similar Documents

Publication Publication Date Title
CN109253907B (en) Method for rapidly and auxiliarily detecting micro-plastic in water environment sample by using Nile red dyeing
WO2003093791A2 (en) Fast electrical lysis of cells and rapid collection of the contents thereof using capillary electrophoresis
CN106198659A (en) A kind of method depositing nanometer gold in micro-fluidic duct
JP2006087424A (en) Filtration inspection device
CN110596107B (en) Reusable high-flux terahertz metamaterial rapid detection method
CN107917970A (en) The method of examination psychotropic agent from hair
CN210953811U (en) Reusable high-flux terahertz metamaterial rapid detection device
CN109746064A (en) A kind of gradient magnetic micro-fluidic chip
CN111504940A (en) Biosensor with terahertz metamaterial and microfluid technology combined and application of biosensor in liquid-phase biological sample detection
CN112934281A (en) Artificial surface plasmon micro-fluidic detection chip structure based on periodic structure and preparation and detection methods thereof
CN104062162A (en) Three-dimensional nanometer chip, method for fractionation detection on circulating tumor cells (CTC) by using chip, and application of three-dimensional nanometer chip
CN110187088B (en) Cell microsphere array chip device for measuring potential signals and method thereof
CN1448719A (en) Novel biological chip
CN112986546A (en) Impedance sensing method for monitoring invasion of population cells in three-dimensional matrix
KR20200090605A (en) Method of sample preparation on a spectrometric sample support
CN114923975B (en) Method for online monitoring of cadmium ions in tea leaves by using flexible sensing film
US20200156073A1 (en) Functionalized mesh and fluidic apparatus for capturing cells or molecules in solution
US20230031122A1 (en) Magnetoelastic microcarriers and monitoring system
CN114870917A (en) Microfluidic chip for identifying different cells and preparation method and detection platform thereof
CN103954771B (en) A kind of low cost is caught/is discharged and detects the method for biomolecule
KR20070005153A (en) Lab-on-a-chip for electrochemical analysis having dual fluid flow channel
CN113617403A (en) Novel micro-fluidic chip of unicellular western blot
US11525829B2 (en) Method for capturing target cells or molecules in solution
CN215179869U (en) Micro-fluidic chip for virus electrical impedance real-time monitoring
Sakaki et al. RoboSCell: an automated single cell arraying and analysis instrument

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant